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一种新的基于Kruppa方程的摄像机线性自标定方法
引用本文:王维盛.一种新的基于Kruppa方程的摄像机线性自标定方法[J].西北师范大学学报,2007,43(5):22-26.
作者姓名:王维盛
作者单位:西北师范大学数学与信息科学学院 甘肃兰州730070
摘    要:针对非线性优化求解Kruppa方程进行摄像机自标定的局部最优问题,提出了一种在特殊情况下的基于Kruppa方程的线性自标定算法.当摄像机在圆周上运动时,首先根据外极线约束关系得到较准确的基本矩阵,然后根据Kruppa方程的未知系数与基本矩阵奇异值分解的参数关系求解摄像机的内外参数.实验结果表明,所得结论和方法是正确和有效的.

关 键 词:基本矩阵  奇异值分解  自标定
文章编号:1001-988X(2007)05-0022-05
修稿时间:2007-04-04

A novel camera linear self-calibration technique based on the Kruppa equations
WANG Wei-sheng.A novel camera linear self-calibration technique based on the Kruppa equations[J].Journal of Northwest Normal University Natural Science (Bimonthly),2007,43(5):22-26.
Authors:WANG Wei-sheng
Institution:College of Mathematics and Information Science, Northwest -sheng Normal University, Lanzhou 730070, Gansu, China
Abstract:The Kruppa equation-based camera self-calibration methods using nonlinear optimization are easily stuck in some local minimum.A new method is presented for the linearization of the Kruppa equation under a special case where the camera rotates along the circle path.For the case,the fundamental matrix is firstly computed through epipolar constraint,then the intrinsic and extrinsic parameters of camera are computed by the unknown scale in equation which is represented using the singular value decomposition(SVD)-based factorization result of the fundamental matrix.Experimental results validate the correctness of the proposed method.
Keywords:fundamental matrix  singular value decomposition  self-calibration
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